#T4SS
Coxiella burnetii type IVB secretion system modulates TLR3/TRIF-dependent NF-κB and IRF responses during infection bioRxivpreprint
Coxiella burnetii type IVB secretion system modulates TLR3/TRIF-dependent NF-κB and IRF responses during infection
Coxiella burnetii ( Cb ), the causative agent of Q fever, replicates within host macrophages by modulating innate immune responses through its type IVB secretion system (T4SS). Host cells sense pathogens via Pattern recognition receptors (PRRs), including Toll-like receptors (TLRs), to recognize pathogen-associated molecular patterns (PAMPs) and initiate signaling pathways that drive pro-inflammatory cytokine and interferon responses. Toll-like receptor 3 (TLR3) triggers the nuclear translocation of nuclear factor kappa-light-chain-enhancer of activated B cells (NF-{kappa}B) and Interferon regulatory factors (IRFs) resulting in pro-inflammatory cytokine production and type I interferon (IFN-I) induction. Here we demonstrate that Cb requires T4SS to suppress TLR3-induced NF-{kappa}B and IRF transcriptional responses. Furthermore, RNA purified from both virulent and avirulent Cb is sufficient to activate TLR3, identifying pathogen RNA as a relevant PAMP in this context. Using a pulmonary infection model with virulent Cb, we found that TLR3/ Toll-Interleukin-1 Receptor Domain-Containing Adapter Protein Inducing Interferon Beta (TRIF)-dependent innate immune pathway inhibits cachexia. In contrast, signaling through the interferon-/{beta} receptor (IFNAR) restricts bacterial dissemination, indicating that these pathways play distinct but complementary roles in host defense. Mechanistically, Cb suppresses TLR3/TRIF signaling in a T4SS-dependent manner by preventing host TLR3 recruitment to the Coxiella-containing vacuole (CCV) and disrupting TRIF-TNF Receptor-Associated Factor 6 (TRAF6) interactions, thereby selectively inhibiting impairing NF-{kappa}B activation. Consistent with this, we identify five T4SS effector proteins that attenuate TLR3-induced NF-{kappa}B signaling, including CBU1292, which suppresses both NF-{kappa}B and IRF-dependent responses downstream of TLR3.
dlvr.it
September 26, 2026 at 6:20 AM
Coxiella burnetii type IVB secretion system modulates TLR3/TRIF-dependent NF-κB and IRF responses during infection bioRxivpreprint
Coxiella burnetii type IVB secretion system modulates TLR3/TRIF-dependent NF-κB and IRF responses during infection
Coxiella burnetii ( Cb ), the causative agent of Q fever, replicates within host macrophages by modulating innate immune responses through its type IVB secretion system (T4SS). Host cells sense pathogens via Pattern recognition receptors (PRRs), including Toll-like receptors (TLRs), to recognize pathogen-associated molecular patterns (PAMPs) and initiate signaling pathways that drive pro-inflammatory cytokine and interferon responses. Toll-like receptor 3 (TLR3) triggers the nuclear translocation of nuclear factor kappa-light-chain-enhancer of activated B cells (NF-{kappa}B) and Interferon regulatory factors (IRFs) resulting in pro-inflammatory cytokine production and type I interferon (IFN-I) induction. Here we demonstrate that Cb requires T4SS to suppress TLR3-induced NF-{kappa}B and IRF transcriptional responses. Furthermore, RNA purified from both virulent and avirulent Cb is sufficient to activate TLR3, identifying pathogen RNA as a relevant PAMP in this context. Using a pulmonary infection model with virulent Cb, we found that TLR3/ Toll-Interleukin-1 Receptor Domain-Containing Adapter Protein Inducing Interferon Beta (TRIF)-dependent innate immune pathway inhibits cachexia. In contrast, signaling through the interferon-/{beta} receptor (IFNAR) restricts bacterial dissemination, indicating that these pathways play distinct but complementary roles in host defense. Mechanistically, Cb suppresses TLR3/TRIF signaling in a T4SS-dependent manner by preventing host TLR3 recruitment to the Coxiella-containing vacuole (CCV) and disrupting TRIF-TNF Receptor-Associated Factor 6 (TRAF6) interactions, thereby selectively inhibiting impairing NF-{kappa}B activation. Consistent with this, we identify five T4SS effector proteins that attenuate TLR3-induced NF-{kappa}B signaling, including CBU1292, which suppresses both NF-{kappa}B and IRF-dependent responses downstream of TLR3.
dlvr.it
September 24, 2026 at 11:19 PM
And T4SS effectors do more than shift the average macrophage.

WT infection generated additional metabolic substates: 5 metabolic clusters versus 2 in every other condition.

Infection is metabolically heterogeneous, cell by cell.
September 4, 2026 at 8:14 AM
Here's some strong agreement:
www.youtube.com/watch?v=t4ss...
WATCH: Rep. Adam Schiff’s full closing statement in Hill and Holmes hearing | First impeachment
YouTube video by PBS NewsHour
www.youtube.com
September 1, 2026 at 2:21 AM
RRIDs were included in this in FEBS Letters paper. We value the author's support of reproducibility. #ReproducibleResearch #OpenResearch #accelerateopenscience
In situ molecular organization and heterogeneity of the Legionella Dot/Icm T4SS
Read the full paper: In situ molecular organization and heterogeneity of the Legionella Dot/Icm T4SS
doi.org
June 14, 2026 at 7:00 AM
Lifestyle-associated variation in type IV secretion systems between phytopathogenic and environmental Ralstonia. Open Access and fee-free in MGen using a Publish and Read agreement: https://doi.org/10.1099/mgen.0.001676

#MGen #PublishandRead
May 14, 2026 at 7:30 AM
How do bacteria avoid killing their own siblings while using contact-dependent weapons? In this work, a conserved DUF4189 protein (Xac2611/Tpf) blocks X-T4SS mediated killing, likely via interaction with VirB5. Great work led by my friend @okagu.bsky.social at the @chuckfarah.bsky.social lab
Happy to share our new bioRxiv preprint:

“To Kill or not to Kill: A Conserved Trans-Intoxication Protection Factor Blocks X-T4SS-Mediated Fratricide through Interaction with VirB5”

www.biorxiv.org/content/10.6...
May 12, 2026 at 6:06 PM
Happy to share our new bioRxiv preprint:

“To Kill or not to Kill: A Conserved Trans-Intoxication Protection Factor Blocks X-T4SS-Mediated Fratricide through Interaction with VirB5”

www.biorxiv.org/content/10.6...
May 11, 2026 at 12:10 PM
To Kill or not to Kill: A Conserved trans-intoxication protection factor Blocks X-T4SS-Mediated Fratricide through Interaction with VirB5 https://www.biorxiv.org/content/10.64898/2026.05.09.723464v1
May 11, 2026 at 4:16 AM
To Kill or not to Kill: A Conserved trans-intoxication protection factor Blocks X-T4SS-Mediated Fratricide through Interaction with VirB5 https://www.biorxiv.org/content/10.64898/2026.05.09.723464v1
May 11, 2026 at 4:16 AM
T2SS ? T4SS ? CDI ? T6SS ? T7SS ?
NO ! The T9SS is also involved in interbacterial competition !!

Great work by Maelle Paillat @maellepllt.bsky.social under the supervision of Thierry Doan @thicoz.bsky.social Congratulations to both ! Glad to see this story out !
May 8, 2026 at 8:55 PM
TraF from a broad-host monoderm plasmid is the first conjugative T4SS component with strong homology to T7SS pseudokinase 🧬 Grohmann & Keller labs elucidate its crystal structure, function and partners. @uni-grat.at & BHT_berliner

👉️ buff.ly/ndoiPD4
May 3, 2026 at 10:01 AM
10. Legionella cytoskeleton manipulation
A transglutaminase effector alters host cytoskeleton dynamics, revealing a novel strategy for intracellular niche formation.
🔗 onlinelibrary.wiley.com/doi/10.1002/...
Legionella pneumophila modulates the host cytoskeleton by an effector of transglutaminase activity
The bacterial pathogen Legionella pneumophila delivers more than 330 effector proteins into host cells through its Dot/Icm type IV secretion system (T4SS) to facilitate its intracellular replication....
onlinelibrary.wiley.com
April 23, 2026 at 3:06 AM
I wrote a Blogpost for #FEMSmicroBlog about our recent publication in which we show that some T4SS effectors of Brucella can associate to outer membrane vehicles. Check it out!
#microSky
The pathogen Brucella causes disease by injecting toxic effectors directly into host cells.

This #FEMSmicroBlog explores a possible new secretion mechanism by which Brucella transports already known effector proteins. #FascinatingMicrobes

buff.ly/c4gyA4a
April 14, 2026 at 12:28 PM
A study by Cote and Cascales labs shows that adhesins trigger microcolony formation which confer resistance against a broad range of short-range contact-dependent weapons (e.g. T6SS, T4SS, CDI) but not against long-range diffusible weapons.
@cascaleslab.bsky.social
www.biorxiv.org/content/10.6...
www.biorxiv.org
April 13, 2026 at 11:57 AM
Crucial Gram-positive Type IV Secretion System protein TraF is a structural homolog of Type VII Secretion System protein EssB/YukC

in #microLife @femsjournals.bsky.social

academic.oup.com/microlife/ad...
Crucial Gram-positive Type IV Secretion System protein TraF is a structural homolog of Type VII Secretion System protein EssB/YukC
Abstract. Type IV secretion systems (T4SS) are found in both monoderm and diderm bacteria. The broad-host-range conjugative plasmid pIP501 from Enterococcu
academic.oup.com
March 27, 2026 at 8:01 PM
After moving to my lab, Liyana employed extensive genetics (systematic deletions & suppressor mutations), aided by @yeowjiang.bsky.social doing biochemistry (affinity purification), successfully established that the target of AbjA is in fact the TrbE ATPase that powers T4SS nec for conjugation! 5/7
March 23, 2026 at 1:42 PM
Here is it! Super new science from us on horizontal gene transfer & bact defense systems! Liyana OW YONG discovered the first-of-its-kind defense factor AbjA that triggers 'abortive conjugation' as a defense mechanism, by targeting the T4SS! How neat?! #MicroSky 1/7

www.biorxiv.org/content/10.6...
March 23, 2026 at 1:42 PM
Happy to share a new review proposing a unified nomenclature for T4SSs.
Great collaboration with Peter J Christie, Gabriel Waksman, Ronnie Per-Arne Berntsson and our team.
academic.oup.com/femsre/artic...
#T4SS#Microbiology
Type IV secretion systems: reconciling diversity through a unified nomenclature
This review presents a comprehensive overview of Type IV Secretion Systems (T4SSs), focusing on their structural, functional, and evolutionary diversity ac
academic.oup.com
February 18, 2026 at 2:13 PM
I love this paper, and want to add a little nugget from our work on conjugative pilus-dependent phages, in which we found a repeated evolutionary relationship between phages targeting the T4P and T4SS: (two paragraphs, search for T4P, also one of them in FigS3)
www.nature.com/articles/s41...
Diverse and abundant phages exploit conjugative plasmids - Nature Communications
Some phages use plasmid-encoded conjugation proteins as receptors to infect their bacterial hosts, making their host range dependent on horizontal transfer of the plasmid. Here, the authors present a ...
www.nature.com
February 17, 2026 at 11:22 PM
T4P vs T4SS pili has to be one of the best (worst?) examples of confusing nomenclature in science! I have had to awkwardly correct even very established microbiologists.
I hugely enjoyed this T4P thread 🤩
February 17, 2026 at 10:13 PM
Coercive assimilation relies on "lethal zygosis." Conjugative plasmids typically encode exclusion proteins (e.g. TrbK) to prevent redundant conjugation. If recipients destroy the incoming plasmid, it fails to express TrbK. The donor T4SS continues to engage the recipient, eventually killing it. (3/)
February 12, 2026 at 12:42 AM
Coercive assimilation relies on "lethal zygosis." Conjugative plasmids typically encode exclusion proteins (e.g. TrbK) to prevent redundant conjugation. If recipients destroy the incoming plasmid, it fails to express TrbK. The donor T4SS continues to engage the recipient, eventually killing it. (3/)
February 12, 2026 at 12:11 AM
Hello Steve! I wish I had a better answer for you, we are looking, but we do not know yet how Saccharibacteria are regulating their natural competence. We know they have 2 distinct pili (thick and thin) and a T4SS. The thin pili isn't needed for competence, but the thick pili of T4SS could be? 1/2
February 10, 2026 at 6:22 PM